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I am using a library that reads a file and returns its size in bytes.

This file size is then displayed to the end user; to make it easier for them to understand it, I am explicitly converting the file size to MB by dividing it by 1024.0 * 1024.0. Of course this works, but I am wondering is there a better way to do this in Python?

By better, I mean perhaps a stdlib function that can manipulate sizes according to the type I want. Like if I specify MB, it automatically divides it by 1024.0 * 1024.0. Somethign on these lines.

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2  
So write one. Also note that many systems now use MB to mean 10^6 instead of 2^20. –  tc. Mar 4 '11 at 13:08
    
@A A, @tc: Please keep in mind that the SI and IEC Norm is kB (Kilo) for 1.000 Byte and KiB (Kibi) for 1.024 Byte. See en.wikipedia.org/wiki/Kibibyte . –  Bobby Mar 4 '11 at 13:12
    
@Bobby: kB actually means "kilobel", equal to 10000 dB. There is no SI unit for byte. IIRC, the IEC recommends KiB but does not define kB or KB. –  tc. Mar 12 '11 at 4:41
    
@tc. The prefix kilo is defined by SI to mean 1000. The IEC defined kB, etc. to use the SI prefix instead of 2^10. –  ford Feb 11 '13 at 23:03
    
@fizzisist: Cite? The IEC has established KiB/MiB/etc, but to my knowledge there's no international standard specifying kB/MB/etc apart from SI, where kB/MB mean kilobel/megabel (just as dB means decibel). It would be unwise, anyway, since MB/GB has long been ambiguous. –  tc. Feb 18 '13 at 16:45

3 Answers 3

up vote 17 down vote accepted

There is hurry.filesize that will take the size in bytes and make a nice string out if it.

>>> from hurry.filesize import size
>>> size(11000)
'10K'
>>> size(198283722)
'189M'

Or if you want 1K == 1000 (which is what most users assume):

>>> from hurry.filesize import size, si
>>> size(11000, system=si)
'11K'
>>> size(198283722, system=si)
'198M'

It has IEC support as well (but that wasn't documented):

>>> from hurry.filesize import size, iec
>>> size(11000, system=iec)
'10Ki'
>>> size(198283722, system=iec)
'189Mi'

Because it's written by the Awesome Martijn Faassen, the code is small, clear and extensible. Writing your own systems is dead easy.

Here is one:

mysystem = [
    (1024 ** 5, ' Megamanys'),
    (1024 ** 4, ' Lotses'),
    (1024 ** 3, ' Tons'), 
    (1024 ** 2, ' Heaps'), 
    (1024 ** 1, ' Bunches'),
    (1024 ** 0, ' Thingies'),
    ]

Used like so:

>>> from hurry.filesize import size
>>> size(11000, system=mysystem)
'10 Bunches'
>>> size(198283722, system=mysystem)
'189 Heaps'
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Perfect! More than wanting to make it work for my case, I wanted to know it there was something like this. –  user225312 Mar 4 '11 at 13:45

Here is what I use:

import math

def convertSize(size):
   size_name = ("KB", "MB", "GB", "TB", "PB", "EB", "ZB", "YB")
   i = int(math.floor(math.log(size,1024)))
   p = math.pow(1024,i)
   s = round(size/p,2)
   if (s > 0):
       return '%s %s' % (s,size_name[i])
   else:
       return '0B'

NB : size should be sent in KB.

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If you're sending size in bytes then just add "B" as the first element of size_name. –  tuxGurl Mar 25 '13 at 17:13
    
Awesome cheers! –  matcheek May 6 '13 at 14:01
    
When you have 0 sized byte of file, it fails. log(0, 1024) is not defined! You should check 0 byte case before this statement i = int(math.floor(math.log(size,1024))). –  genclik27 May 7 at 13:57
    
genclik - you're right. I've just submitted a minor edit which will fix this, and enable conversion from bytes. Thanks, Sapam, for the original –  FarmerGedden Aug 22 at 9:37

Instead of a size divisor of 1024.0 * 1024.0 you could use 1<<20 to get megabytes, 1<<30 to get gigabytes, etc...

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Is it not >>? –  Tjorriemorrie Aug 8 at 12:54
    
@Tjorriemorrie: it is << - for readability I defined a constant MBFACTOR = float(1<<20) which I then use with bytes, i.e.: megas = size_in_bytes/MBFACTOR. –  ccpizza Aug 9 at 16:05

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